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首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Application of Energy Dispersive X-ray Fluorescence Spectrometry to the Determination of Copper, Manganese, Zinc, and Sulfur in Grass (Lolium perenne) in Grazed Agricultural Systems
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Application of Energy Dispersive X-ray Fluorescence Spectrometry to the Determination of Copper, Manganese, Zinc, and Sulfur in Grass (Lolium perenne) in Grazed Agricultural Systems

机译:能量分散X射线荧光光谱法在放牧农业系统中草(Lolium Perenne)中铜,锰,锌和硫的测定

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摘要

Conventional methods for the determination of major nutrients and trace elements in grass rely on acid digestion followed by analysis using inductively coupled plasma optical emission spectrometry (ICP-OES), which can be both time consuming and costly. Energy dispersive X-ray fluorescence (EDXRF) spectrometry offers a rapid alternative that can determine multiple elements in a single scan. Copper, Mn, Zn, and S in grass samples were determined using EDXRF with a number of different calibration approaches using both empirical standards and the theoretical relationships between concentrations and intensities. Using an existing archive of 467 grass samples of known concentrations, a suite of 30 samples was selected as empirical grass standards to build a calibration set between sample concentrations and EDXRF intensities. The theoretical or standardless approach used the fundamental parameters method to determine element concentrations. To validate the two calibration methods, 59 samples were randomly selected from the same archive and database and analyzed by EDXRF. The measurements of Cu, Mn, Zn, and S were compared with the ICP-OES values using agreement statistics. An excellent correlation was observed between the concentrations determined by EDXRF and ICP-OES (R 0.90) regardless of the calibration approach. However, agreement and closeness to the true value varied and were assessed using agreement statistics. Across all elements, the empirically calibrated samples were in excellent agreement with the values determined by ICP-OES. The theoretical calibrations provided excellent agreement for Mn and Zn, but a degree of fixed and proportional bias was observed in the Cu and S values. Fixed bias was corrected by subtracting the computed bias from the EDXRF concentrations and improved the overall agreement. Similarly, proportional bias was corrected using the linear regression model to predict the corrected EDXRF values. This improved the overall agreement with the ICP-OES values for both Cu and S using corrected fundamental parameters calibrations. This study provides a practical basis for the use of EDXRF to determine Cu, Mn, Zn, and S in grass samples to monitor forage quality in grazed systems without the need for sample digestion. The observed fixed and proportional bias in the theoretical calibrations can be corrected provided that a good correlation exists between EDXRF and conventional methods.
机译:用于测定草丛中主要营养素和微量元素的常规方法依赖于酸消解,然后使用电感耦合等离子体光发射光谱法(ICP-OES)进行分析,这可能耗时且昂贵。能量分散X射线荧光(EDXRF)光谱法提供了一种快速替代方案,可以在单个扫描中确定多个元素。使用EDXRF使用edxRF使用经验标准和浓度与强度之间的理论关系确定草样品中的铜,Mn,Zn和S。使用已知浓度的467种草样品的现有存档,选择了30个样品的套件作为经验草标准,以构建样品浓度和EDXRF强度之间的校准。理论或无标尺方法使用基本参数方法来确定元素浓度。为了验证两个校准方法,59个样本从相同的档案和数据库中随机选择,并由EDXRF分析。使用协议统计数据与ICP-OES值进行比较Cu,Mn,Zn和S的测量。无论校准方法如何,在EDXRF和ICP-OES(R> 0.90)确定的浓度之间观察到出色的相关性。但是,使用协议统计,协议和近距离变化,并进行了评估。在所有元素中,经验校准的样本与ICP-OES确定的值非常一致。理论校准为Mn和Zn提供了优异的一致性,但在Cu和S值中观察到了一定程度的固定和比例偏差。通过从EDXRF集中减去计算的偏差并改善整体协议来纠正固定偏差。类似地,使用线性回归模型来校正比例偏差以预测校正的EDXRF值。这改善了使用校正的基本参数校准的CU和S的ICP-OES值的总体协议。本研究为使用EDXRF来确定Cu,Mn,Zn和S在草色样本中的实际基础,以监测放牧系统中的饲料质量,而无需样品消化。可以校正理论校准中观察到的固定和比例偏压,条件是EDXRF与常规方法之间存在良好的相关性。

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